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Kainov, J.

Publications and source records attributed to Kainov, J..

2 recordsLinked to original sources

Cryo-electron tomography reveals paracellular claudin-15 pores at the tight junction

Tight junctions (TJs) are composed of anastomosing strands between epithelial cells. Members of the claudin family of proteins reside within TJ strands and either seal the paracellular space or assemble into charge and size-selective pathways. Functional studies suggest that claudin-mediated conductance pathways resemble traditional ion channels. However, such postulated pores have not been directly visualized. Using a model claudin deficient epithelium where exogenously introduced EGFP-CLDN15 is the only claudin family member expressed, our investigation sheds light on the arrangement and structure of the postulated claudin pores. Following correlative light and electron microscopical identification of TJs and cryo-electron tomography, we identified series of linearly distributed electron lucent features that locate between two closely apposed plasma membranes of adjacent cells. At these sites, the median spacing between adjacent features is 2.25 nm (IQR = 1.83), with a median 1.66 nm (IQR = 0.92) diameter. In contrast, such features were not observed in claudin deficient model epithelium with exogenous mCherry-ZO-1 expression. These findings agree with the postulated and extensively modeled claudin pores formed within the simple columnar epithelium. This provides the first direct evidence of paracellular pore organization and paves way for future biophysical investigation. SIGNIFICANCEBy combining correlative fluorescence imaging, FIB milling, and cryo-ET within an epithelial system restricted to a single claudin isoform, we were able to visualize repetitive, low-density pore features within CLDN15-containing tight junctions (TJs), structures not previously resolved in intact epithelia. These features were absent in claudin-negative controls and displayed placement and geometry consistent with CLDN15 X-ray crystallography and molecular dynamics models. Quantitative measurements of pore diameter, paracellular gap width, and pore spacing further support their assignment as CLDN15 pores. These findings establish a structurally validated platform for defining claudin pore ultrastructure and provide a foundation for future efforts to compare pore-forming and barrier-forming claudins, understand disease-associated junction remodeling, and guide therapeutic modulation of epithelial barrier function.

physiology↗

Claudin-2 limits pancreatitis development through regulating tight junction-controlled pancreatic ductal transport

Pancreatitis is an inflammatory disease of the pancreas that can arise due to various factors, including environmental risks such as diet, alcohol, and smoking, as well as genetic predispositions. In some cases, pancreatitis may progress and become chronic, leading to irreversible damage and impaired pancreatic function. Genome-wide association studies (GWAS) have identified polymorphisms at the X-linked CLDN2 locus as risk factors for both sporadic and alcohol-related chronic pancreatitis. CLDN2 encodes claudin-2 (CLDN2), a paracellular cation-selective channel localized at tight junctions and expressed in the pancreas and other secretory organs. However, whether and how CLDN2 may modify pancreatitis susceptibility remains poorly understood. We aimed to clarify the potential role of CLDN2 in the onset and progression of pancreatitis. We employed multiple methodologies to examine the role of CLDN2 in human pancreatic tissue, caerulein-induced experimental pancreatitis mouse model, and pancreatic ductal epithelial organoids. In both human chronic pancreatitis tissues and caerulein-induced experimental pancreatitis, CLDN2 protein was significantly upregulated in pancreatic ductal epithelial cells. Our studies using pancreatic ductal epithelial organoids and mice demonstrated the inflammatory cytokine IFN{gamma} upregulates claudin-2 expression at both RNA and protein levels. Following caerulein treatment, Ifng KO mice had diminished upregulation of CLDN2 relative to WT mice, indicating that caerulein-induced claudin-2 expression is partially driven by IFN{gamma}. Functionally, Cldn2 knockout mice developed more severe caerulein-induced experimental pancreatitis, indicating CLDN2 plays a protective role in pancreatitis development. Pancreatic ductal epithelial organoid-based studies demonstrated that CLDN2 is critical for sodium-dependent water transport and necessary for cAMP-driven, CFTR-dependent fluid secretion. These findings suggest that functional crosstalk between CLDN2 and CFTR is essential for fluid transport in pancreatic ductal epithelium, which may protect against pancreatitis by adjusting pancreatic ductal secretion to prevent worsening autodigestion and inflammation. In conclusion, our studies suggest CLDN2 upregulation during pancreatitis may play a protective role in limiting disease development, and decreased CLDN2 function may increase pancreatitis severity. These results point to the possibility of modulating pancreatic ductal CLDN2 function as an approach for therapeutic intervention of pancreatitis.

pathology↗